MHD Heat Transfer in Two-Layered Flow of Conducting Fluids through a Channel Bounded by Two Parallel Porous Plates in a Rotating System

The paper aims to analyze the heat transfer aspects of a two-layered fluid flow in a horizontal channel under the action of an applied magnetic and electric fields, when the whole system is rotated about an axis perpendicular to the flow. The flow is driven by a common constant pressure gradient in...

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Main Authors: Linga Raju T., Neela Rao B.
Format: Article
Language:English
Published: Sciendo 2016-08-01
Series:International Journal of Applied Mechanics and Engineering
Subjects:
mhd
Online Access:https://doi.org/10.1515/ijame-2016-0038
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spelling doaj-3611aa0ce1554bf5813f91a6c94430582021-09-05T20:51:06ZengSciendoInternational Journal of Applied Mechanics and Engineering1734-44922353-90032016-08-0121362364810.1515/ijame-2016-0038MHD Heat Transfer in Two-Layered Flow of Conducting Fluids through a Channel Bounded by Two Parallel Porous Plates in a Rotating SystemLinga Raju T.0Neela Rao B.1Department of Engineering Mathematics, AUCE(A), Andhra University, VISAKHAPATNAM, Pin code: 530 003, A.P, IndiaDepartment of Mathematics, Aditya Institute of Technology and Management, TEKKALI, Pin code: 532 201, A.P, IndiaThe paper aims to analyze the heat transfer aspects of a two-layered fluid flow in a horizontal channel under the action of an applied magnetic and electric fields, when the whole system is rotated about an axis perpendicular to the flow. The flow is driven by a common constant pressure gradient in the channel bounded by two parallel porous insulating plates, one being stationary and the other one oscillatory. The fluids in the two regions are considered electrically conducting, and are assumed to be incompressible with variable properties, namely, different densities, viscosities, thermal and electrical conductivities. The transport properties of the two fluids are taken to be constant and the bounding plates are maintained at constant and equal temperature. The governing partial differential equations are then reduced to the ordinary linear differential equations by using a two-term series. The temperature distributions in both fluid regions of the channel are derived analytically. The results are presented graphically to discuss the effect on the heat transfer characteristics and their dependence on the governing parameters, i.e., the Hartmann number, Taylor number, porous parameter, and ratios of the viscosities, heights, electrical and thermal conductivities. It is observed that, as the Coriolis forces become stronger, i.e., as the Taylor number increases, the temperature decreases in the two fluid regions. It is also seen that an increase in porous parameter diminishes the temperature distribution in both the regions.https://doi.org/10.1515/ijame-2016-0038mhdtwo-layered fluids/immiscible fluidsunsteady flowheat transferrigid rotationporous boundaries
collection DOAJ
language English
format Article
sources DOAJ
author Linga Raju T.
Neela Rao B.
spellingShingle Linga Raju T.
Neela Rao B.
MHD Heat Transfer in Two-Layered Flow of Conducting Fluids through a Channel Bounded by Two Parallel Porous Plates in a Rotating System
International Journal of Applied Mechanics and Engineering
mhd
two-layered fluids/immiscible fluids
unsteady flow
heat transfer
rigid rotation
porous boundaries
author_facet Linga Raju T.
Neela Rao B.
author_sort Linga Raju T.
title MHD Heat Transfer in Two-Layered Flow of Conducting Fluids through a Channel Bounded by Two Parallel Porous Plates in a Rotating System
title_short MHD Heat Transfer in Two-Layered Flow of Conducting Fluids through a Channel Bounded by Two Parallel Porous Plates in a Rotating System
title_full MHD Heat Transfer in Two-Layered Flow of Conducting Fluids through a Channel Bounded by Two Parallel Porous Plates in a Rotating System
title_fullStr MHD Heat Transfer in Two-Layered Flow of Conducting Fluids through a Channel Bounded by Two Parallel Porous Plates in a Rotating System
title_full_unstemmed MHD Heat Transfer in Two-Layered Flow of Conducting Fluids through a Channel Bounded by Two Parallel Porous Plates in a Rotating System
title_sort mhd heat transfer in two-layered flow of conducting fluids through a channel bounded by two parallel porous plates in a rotating system
publisher Sciendo
series International Journal of Applied Mechanics and Engineering
issn 1734-4492
2353-9003
publishDate 2016-08-01
description The paper aims to analyze the heat transfer aspects of a two-layered fluid flow in a horizontal channel under the action of an applied magnetic and electric fields, when the whole system is rotated about an axis perpendicular to the flow. The flow is driven by a common constant pressure gradient in the channel bounded by two parallel porous insulating plates, one being stationary and the other one oscillatory. The fluids in the two regions are considered electrically conducting, and are assumed to be incompressible with variable properties, namely, different densities, viscosities, thermal and electrical conductivities. The transport properties of the two fluids are taken to be constant and the bounding plates are maintained at constant and equal temperature. The governing partial differential equations are then reduced to the ordinary linear differential equations by using a two-term series. The temperature distributions in both fluid regions of the channel are derived analytically. The results are presented graphically to discuss the effect on the heat transfer characteristics and their dependence on the governing parameters, i.e., the Hartmann number, Taylor number, porous parameter, and ratios of the viscosities, heights, electrical and thermal conductivities. It is observed that, as the Coriolis forces become stronger, i.e., as the Taylor number increases, the temperature decreases in the two fluid regions. It is also seen that an increase in porous parameter diminishes the temperature distribution in both the regions.
topic mhd
two-layered fluids/immiscible fluids
unsteady flow
heat transfer
rigid rotation
porous boundaries
url https://doi.org/10.1515/ijame-2016-0038
work_keys_str_mv AT lingarajut mhdheattransferintwolayeredflowofconductingfluidsthroughachannelboundedbytwoparallelporousplatesinarotatingsystem
AT neelaraob mhdheattransferintwolayeredflowofconductingfluidsthroughachannelboundedbytwoparallelporousplatesinarotatingsystem
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